TY - JOUR
T1 - Simultaneous Enhancement of Sensitivity, Resonant Frequency, and Overload Capability of Piezoresistive Accelerometers by Heavily-Doped Fillet Structures on Sensing Beams
AU - Xia, Yong
AU - Wang, Tao
AU - Lv, Yang
AU - Han, Xiangguang
AU - Yu, Mingzhi
AU - Tan, Renjie
AU - Huang, Mimi
AU - Jia, Chen
AU - Zhao, Libo
AU - Sun, Lin
AU - Yang, Ping
AU - Lu, Dejiang
N1 - Publisher Copyright:
© 2001-2012 IEEE.
PY - 2025
Y1 - 2025
N2 - High sensitivity, high natural frequency, and high overload capability are desired for accelerometers used in industrial applications, but simultaneously enhancing all is challenging. Here, via designing novel heavily-doped fillet structures, we prove the sensitivity, resonant frequency, and overload capability can be simultaneously enhanced. The enhancements are attributed to regulations of stress concentration and effective sensing regions by the heavily-doped fillets. The sensors with and without fillets are designed, fabricated, packaged, and tested. The results show a sensitivity of 0.31 ± 0.02 mV/g at 5 V, a natural frequency of 37.87 ± 2.09 kHz, and an overload of 10040.17 ± 531.76 g for sensors with 10- \mu m fillets, which are superior to 0.27 ± 0.01 mV/g at 5 V, 34.13 ± 0.90 kHz, and 7368.55 ± 843.92 g for those no-fillet counterparts. In addition, the developed sensor further exhibited feasibility in air-bearing vibration monitoring. The proposed design is envisioned to give insights into the novel designs of high-performance stress-based sensors, including accelerometers, pressure sensors, and strain gauges.
AB - High sensitivity, high natural frequency, and high overload capability are desired for accelerometers used in industrial applications, but simultaneously enhancing all is challenging. Here, via designing novel heavily-doped fillet structures, we prove the sensitivity, resonant frequency, and overload capability can be simultaneously enhanced. The enhancements are attributed to regulations of stress concentration and effective sensing regions by the heavily-doped fillets. The sensors with and without fillets are designed, fabricated, packaged, and tested. The results show a sensitivity of 0.31 ± 0.02 mV/g at 5 V, a natural frequency of 37.87 ± 2.09 kHz, and an overload of 10040.17 ± 531.76 g for sensors with 10- \mu m fillets, which are superior to 0.27 ± 0.01 mV/g at 5 V, 34.13 ± 0.90 kHz, and 7368.55 ± 843.92 g for those no-fillet counterparts. In addition, the developed sensor further exhibited feasibility in air-bearing vibration monitoring. The proposed design is envisioned to give insights into the novel designs of high-performance stress-based sensors, including accelerometers, pressure sensors, and strain gauges.
KW - Fillet structure
KW - heavy doping
KW - piezoresistive accelerometer
KW - simultaneous performance enhancement
UR - https://www.scopus.com/pages/publications/105002584286
U2 - 10.1109/JSEN.2025.3557123
DO - 10.1109/JSEN.2025.3557123
M3 - 文章
AN - SCOPUS:105002584286
SN - 1530-437X
VL - 25
SP - 19138
EP - 19146
JO - IEEE Sensors Journal
JF - IEEE Sensors Journal
IS - 11
ER -